Processes of hydrate formation and dissolution behind a shock wave in a liquid containing gas bubbles (mixture of nitrogen and carbon dioxide)
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Abstract
The processes of dissolution and hydrate formation behind a moderate-amplitude shock wave in water containing gas bubbles (mixture of nitrogen and carbon dioxide) are studied in experiments with different initial static pressures in the medium and concentrations of carbon dioxide in bubbles. An increase in static pressure in the gas-liquid medium is demonstrated to enhance the influence of the non-reacting gas (nitrogen) on the processes of dissolution and hydrate formation.
Key words
shock wave liquid gas bubbles bubble fragmentation dissolution hydrate formationPreview
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References
- 1.N. Handa and T. Oshumi (eds.), Direct Ocean Disposal of Carbon Dioxide, Terrapub., Tokyo (1995).Google Scholar
- 2.V. Anderson, S. Woodhouse, O. Fr. Graff, and J. S. Gudmundson, “Hydrates for deep ocean storage of CO2,” in: Proc. of the 5th Int. Conf. on Gas Hydrates (Trondheim, Norway, June 13–16, 2005), S. n., Trondheim (2005), P. ref. 4006, pp. 1135–1139.Google Scholar
- 3.S. Tanaka, F. Maruyama, O. Takano, et al., “Experimental study on CO2 storage and sequestration in form of hydrate pellets,” in: Proc. of the 5th Int. Conf. on Gas Hydrates (Trondheim, Norway, June 13–16, 2005), S. n., Trondheim (2005), P. ref. 4028, pp. 1314–1319.Google Scholar
- 4.S. Tanaka, O. Takano, K. Uchida, et al., “Gas hydrate formation technology using low-temperature and low-pressure conditions. Part 2. Study on application to CO2 separation with a bench plant,” in: Proc. of the 5th Int. Conf. on Gas Hydrates (Trondheim, Norway, June 13–16, 2005), S. n., Trondheim (2005), P. ref. 4031, pp. 1332–1339.Google Scholar
- 5.M. Ota, M. Seko, and H. Endou, “Gas separation process of carbon dioxide fro mixed gases by hydrate production,” in: Proc. of the 5th Int. Conf. on Gas Hydrates (Trondheim, Norway, June 13–16, 2005), S. n., Trondheim (2005), P. ref. 4032, pp. 1340–1343.Google Scholar
- 6.R. Ohmura, S. Kashiwazaki, S. Shiota, et al., “Structure-1 and structure-2 hydrate formation using water spraying,” in: Proc. of the 4th Int. Conf. on Gas Hydrates (Yakohama, Japan, May 19–23, 2002), S. n., Yakohama (2002), pp. 1049–1054.Google Scholar
- 7.K. Miyata, T. Okui, H. Hirayama, et al., “A challenge to high-rate industrial production of methane hydrate,” in: Proc. of the 4th Int. Conf. on Gas Hydrates (Yakohama, Japan, May 19–23, 2002), S. n., Yakohama (2002), pp. 1031–1035.Google Scholar
- 8.I. S. Gudmundson, “Method of obtaining gas hydrates for transportation and storage,” RF Patent No. 2200727, C 07 C 5/02, No. 97112086/06, Appl. 07.02.1997, Publ. 03.20.2003, Bul. No. 8.Google Scholar
- 9.V. S. Yakushev, “Method of extraction and transportation of natural gas from gas and gas-hydrate sea-based deposits — flowers and bees,” RF Patent No. 2198285, E 21 B 43/01, No. 98113838/03, Appl. 07.13.1998, Publ. 02.10.2003, Bul. No. 4.Google Scholar
- 10.H. Tajima, A. Yamasaki, F. Kiyono, et al., “Continuous gas hydrate formation process by static mixing of fluids,” in: Proc. of the 5th Int. Conf. on Gas Hydrates (Trondheim, Norway, June 13–16, 2005), S. n., Trondheim (2005), P. ref. 1010, pp. 75–80.Google Scholar
- 11.K. B. Komissarov and V. A. Finochenko, “Facility for obtaining gas hydrates,” RF Patent No. 2045718, F 25 D 3/12, No. 5044706/13, Appl. 05.29.1992, Publ. 10.10.1995, Bul. No. 28.Google Scholar
- 12.Y. Kozo, F. Tetsuro, K. Takahiro, and K. Yuichi, “Production method for gas hydrates and device for producing same,” Patent No. 2347938 A GB, C 07 C7/152, No. 0006039.2, Publ. 20.09.2000.Google Scholar
- 13.V. E. Dontsov, V. E. Nakoryakov, and L. S. Chernoi, “Method of obtaining gas hydrates,” RF Patent No. 2270053, B 01 F 3/04, No. 2003133051/15, Appl. 11.11.2003, Publ. 02.20.2006, Bul. No. 5.Google Scholar
- 14.V. E. Dontsov, V. E. Nakoryakov, and A. A. Chernov, “Formation of gas hydrates in a gas-liquid mixture behind a shock wave,” Dokl. Ross. Akad. Nauk, 411, No. 2, 190–193 (2006).Google Scholar
- 15.V. E. Dontsov, V. E. Nakoryakov, and A. A. Chernov, “Shock waves in water with Freon-12 bubbles and formation of gas hydrates,” J. Appl. Mech. Tech. Phys., 48, No. 3, 346–360 (2007).CrossRefADSGoogle Scholar
- 16.V. E. Dontsov, A. A. Chernov, and E. V. Dontsov, “Shock waves and hydrate formation of carbon dioxide with an elevated initial pressure in a gas-liquid medium,” Teplofiz. Aéromekh., 14, No. 1, 23–46 (2007).Google Scholar
- 17.H. M. Habib and B. D. Wood, “Simultaneous heat and mass transfer in film absorption with the presence of non-absorbable gases,” Trans. ASME, 123, 984–989 (2001).CrossRefGoogle Scholar
- 18.Y. F. Makogon, Gas Hydrates, Preventing Their Formation, and Their Applications [in Russian], Nedra, Moscow (1985).Google Scholar
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